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Residual Stress in High-Velocity Impact Coatings: Parametric Finite Element Analysis Approach

机译:高速冲击涂层中的残余应力:参数有限元分析方法

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摘要

High-velocity impact coatings are produced by techniques such as HVOF, HVAF, cold spraying, warm spraying, and supersonic plasma spraying. All these processes have in common the impact of particles at high velocities that produce peening of the surface and induce compressive residual stresses in the radial and axial orientations of the impact. If the process involves a significant heat input to the particles, quenching of splats and thermal mismatch between coating and substrate adds residual stress to the peening, and subsequently defines the final stress state. Through a parametric finite element model of coating formation, physical variables-including particle temperature and velocity, particle mass, particle morphology and deposition temperature-are studied to observe their effect on residual stresses, and define their possible manipulation to design coatings of desired average residual stress. To allow key parameter selection, a contour map of SS316 feedstock deposited on SS316 substrate is produced based on the parametric modeling of particle impact (via an explicit FE model) and the subsequent layer-by-layer coating formation (via an implicit FE model) employing ABAQUS(R) code. The Johnson-Cook model for high strain, strain rate and temperature is used as the constitutive equation for the study of impact and rapid cooling.
机译:高速冲击涂层是通过HVOF,HVAF,冷喷涂,保暖喷涂和超声等离子体喷涂的技术生产的。所有这些过程都具有常见的颗粒对高速度的影响,该高速度产生了表面喷丸,并在径向和轴向取向中诱导压缩残余应力。如果该方法涉及对颗粒的显着热量,则涂层和衬底之间的Splats和热失配的猝灭增加了挤压的压力,随后限定了最终应力状态。通过涂层形成的参数有限元模型,研究了物理变量 - 包括颗粒温度和速度,颗粒物质,颗粒形态和沉积温度 - 以观察它们对残余应力的影响,并定义其可能的操纵,以设计所需的平均残余的涂层的操纵压力。为了允许关键参数选择,基于粒子冲击(通过显式Fe模型)和随后的层涂层形成(通过隐式FE模型)产生沉积在SS316衬底上的SS316原料的轮廓图雇用ABAQUS(R)代码。高应变,应变速率和温度的约翰逊烹饪模型用作撞击和快速冷却研究的本构方程。

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